Ch 4 Solutions.pdf
-
Upload
lilianti-raange -
Category
Documents
-
view
258 -
download
0
Transcript of Ch 4 Solutions.pdf
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 1/20
Chapter 4 Symmetry and Group Theory 33
Copyright © 2014 Pearson Education, Inc.
CHAPTER 4: SYMMETRY AND GROUP THEORY
4.1 a. Ethane in the staggered conformation has 2 C 3 axes (the C–C line), 3 perpendicular C 2
axes bisecting the C–C line, in the plane of the two C’s and the H’s on opposite sides of
the two C’s. No h, 3d , i, S 6. D3d .
b. Ethane in eclipsed conformation has two C 3 axes (the C–C line), three perpendicular C 2
axes bisecting the C–C line, in the plane of the two C’s and the H’s on the same side of
the two C’s. Mirror planes include h and 3d . D3h.
c. Chloroethane in the staggered conformation has only one mirror plane, through both C’s,
the Cl, and the opposite H on the other C. C s.
d. 1,2-dichloroethane in the trans conformation has a C 2 axis perpendicular to the
C–C bond and perpendicular to the plane of both Cl’s and both C’s, a h plane through
both Cl’s and both C’s, and an inversion center. C 2h.
4.2 a. Ethylene is a planar molecule, with C 2 axes through the C’s and perpendicular to the C–C bond both in the plane of the molecule and perpendicular to it. It also has a h plane and
two d planes (arbitrarily assigned). D2h.
b. Chloroethylene is also a planar molecule, with the only symmetry element the mirror
plane of the molecule. C s.
c. 1,1-dichloroethylene has a C 2 axis coincident with the C–C bond, and two mirror planes,
one the plane of the molecule and one perpendicular to the plane of the molecule through
both C’s. C 2v.
cis-1,2-dichloroethylene has a C 2 axis perpendicular to the C–C bond, and in the plane of
the molecule, two mirror planes (one the plane of the molecule and one perpendicular to
the plane of the molecule and perpendicular to the C–C bond). C 2v.
trans-1,2-dichloroethylene has a C 2 axis perpendicular to the C–C bond and
perpendicular to the plane of the molecule, a mirror plane in the plane of the molecule,
and an inversion center. C 2h.
4.3 a. Acetylene has a C axis through all four atoms, an infinite number of perpendicular
C 2 axes, a h plane, and an infinite number of d planes through all four atoms. D
h.
b. Fluoroacetylene has only the C axis through all four atoms and an infinite number of
mirror planes, also through all four atoms. C
v.
c. Methylacetylene has a C 3 axis through the carbons and three v planes, eachincluding one hydrogen and all three C’s. C 3v.
d. 3-Chloropropene (assuming a rigid molecule, no rotation around the C–C bond) hasno rotation axes and only one mirror plane through Cl and all three C atoms. C s.
e. Phenylacetylene (again assuming no internal rotation) has a C 2 axis down the long axis
of the molecule and two mirror planes, one the plane of the benzene ring and the other
perpendicular to it. C 2v
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 2/20
34 Chapter 4 Symmetry and Group Theory
Copyright © 2014 Pearson Education, Inc.
4.4 a. Napthalene has three perpendicular C 2 axes, and a horizontal mirror plane (regardless
of which C 2 is taken as the principal axis), making it a D2h molecule.
b. 1,8-dichloronaphthalene has only one C 2 axis, the C–C bond joining the two rings, and
two mirror planes, making it a C 2v molecule.
c. 1,5-dichloronaphthalene has one C 2 axis perpendicular to the plane of the molecule, ahorizontal mirror plane, and an inversion center; overall, C 2h.
d. 1,2-dichloronaphthalene has only the mirror plane of the molecule, and is a C s molecule.
4.5 a. 1,1-dichloroferrocene has a C 2 axis parallel to the rings, perpendicular to the Cl–Fe–Cl
h mirror plane. It also has an inversion center.C 2h.
b. Dibenzenechromium has collinear C 6, C 3, and C 2 axes perpendicular to the rings, six
perpendicular C 2 axes and a h plane, making it a D6h molecule. It also has three v
and three d planes, S 3 and S 6 axes, and an inversion center.
c. Benzenebiphenylchromium has a mirror plane through the Cr and the biphenyl bridge bond and no other symmetry elements, so it is a C s molecule.
d. H3O+ has the same symmetry as NH3: a C 3 axis, and three v planes for a C 3v molecule.
e. O2F2 has a C 2 axis perpendicular to the O–O bond and perpendicular to a line connecting
the fluorines. With no other symmetry elements, it is a C 2 molecule.
f. Formaldehyde has a C 2 axis collinear with the C=O bond, a mirror plane including all the
atoms, and another perpendicular to the first and including the C and O atoms. C 2v.
g. S8 has C 4 and C 2 axes perpendicular to the average plane of the ring, four C 2 axes through
opposite bonds, and four mirror planes perpendicular to the ring, each including two Satoms. D4d .
h. Borazine has a C 3 axis perpendicular to the plane of the ring, three perpendicular C 2 axes,
and a horizontal mirror plane. D3h.
i. Tris(oxalato)chromate(III) has a C 3 axis and three perpendicular C 2 axes, each splitting
a C–C bond and passing through the Cr. D3.
j. A tennis ball has three perpendicular C 2 axes (one through the narrow portions of each
segment, the others through the seams) and two mirror planes including the first rotation
axis. D2d .
4.6 a. Cyclohexane in the chair conformation has a C 3 axis perpendicular to the average plane
of the ring, three perpendicular C 2 axes between the carbons, and three v planes, each
including the C 3 axis and one of the C 2 axes. D3d .
b. Tetrachloroallene has three perpendicular C 2 axes, one collinear with the double bonds
and the other two at 45° to the Cl—C—Cl planes. It also has two v planes, one defined
by each of the Cl–C–Cl groups. Overall, D2d . (Note that the ends of tetrachlorallene are
staggered.)
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 3/20
Chapter 4 Symmetry and Group Theory 35
Copyright © 2014 Pearson Education, Inc.
c. The sulfate ion is tetrahedral. T d .
d. Most snowflakes have hexagonal symmetry (Figure 4.2), and have collinear C 6, C 3, and
C 2 axes, six perpendicular C 2 axes, and a horizontal mirror plane. Overall, D6h. (For high
quality images of snowflakes, including some that have different shapes, see K. G.
Libbrecht, Snowflakes, Voyageur Press, Minneapolis, MN, 2008.)
e. Diborane has three perpendicular C 2 axes and three perpendicular mirror planes. D2h.
f. 1,3,5-tribromobenzene has a C 3 axis perpendicular to the plane of the ring, three
perpendicular C 2 axes, and a horizontal mirror plane. D3h.
1,2,3-tribromobenzene has a C2 axis through the middle Br and two perpendicular
mirror planes that include this axis. C 2v
1,2,4-tribromobenzene has only the plane of the ring as a mirror plane. C s.
g. A tetrahedron inscribed in a cube has T d symmetry (see Figure 4.6).
h. The left and right ends of B3H8 are staggered with respect to each other. There is a
C 2 axis through the borons. In addition, there are two planes of symmetry, each
containing four H atoms, and two C 2 axes between these planes and perpendicular to
the original C 2. The point group is D2d .
i. A mountain swallowtail butterfly has only a mirror that cuts through the head, thorax, and
abdomen. C s
j. The Golden Gate Bridge has a C2 axis and two perpendicular mirror planes that include
this axis. C 2v
4.7 a. A sheet of typing paper has three perpendicular C 2 axes and three perpendicular mirror planes. D2h.
b. An Erlenmeyer flask has an infinite-fold rotation axis and an infinite number of v
planes, C
v.
c. A screw has no symmetry operations other than the identity, for a C 1 classification.
d. The number 96 (with the correct type font) has a C 2 axis perpendicular to the plane
of the paper, making it C 2h.
e. Your choice—the list is too long to attempt to answer it here.
f. A pair of eyeglasses has only a vertical mirror plane. C s.
g. A five-pointed star has a C 5 axis, five perpendicular C 2 axes, one horizontal and five
vertical mirror planes. D5h.
h. A fork has only a mirror plane. C s.
i. Wilkins Micawber has no symmetry operation other than the identity. C 1.
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 4/20
36 Chapter 4 Symmetry and Group Theory
Copyright © 2014 Pearson Education, Inc.
j. A metal washer has a C axis, an infinite number of perpendicular C 2 axes, an infinite
number of v mirror planes, and a horizontal mirror plane. D
h.
4.8 a. D2h f. C 3
b. D4h (note the four knobs) g. C 2h
c. C s h. C 8v
d. C 2v i. Dh
e. C 6v j. C 3v
4.9 a. D3h f. C s (note holes)
b. D4h g. C 1
c. C s h. C 3v
d. C 3 i. Dh
e. C 2v j. C 1
4.10 Hands (of identical twins): C 2 Baseball: D2d Atomium: C 3v
Eiffel Tower: C 4v Dominoes: 6 × 6: C 2v 3 × 3: C 2 5 × 4: C s
Bicycle wheel: The wheel shown has 32 spokes. The point group assignment depends on howthe pairs of spokes (attached to both the front and back of the hub) connect with the rim. If the
pairs alternate with respect to their side of attachment, the point group is D8d . Other arrangements
are possible, and different ways in which the spokes cross can affect the point group assignment;
observing an actual bicycle wheel is recommended. (If the crooked valve is included, there is no
symmetry, and the point group is a much less interesting C 1.)
4.11 a. Problem 3.41*: a. VOCl3: C 3v b. PCl3: C 3v c. SOF4: C 2v
d. SO3: D3h e. ICl3: C 2v f. SF6: Oh
g. IF7: D5h h. XeO2F4: D4h i. CF2Cl2: C 2v
j. P4O6: T d
* Incorrectly cited as problem 4.30 in first printing of text.
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 5/20
Chapter 4 Symmetry and Group Theory 37
Copyright © 2014 Pearson Education, Inc.
b. Problem 3.42*: a. PH3: C 3v b. H2Se: C 2v c. SeF4: C 2v
d. PF5: D3h e. IF5: C 4v f. XeO3: C 3v
g. BF2Cl: C 2v h. SnCl2: C 2v i. KrF2: Dh
j. IO2F5
2–
: D5h
4.12 a. Figure 3.8: a. CO2: Dh b. SO3: D3h c. CH4: T d
d. PCl5: D3h e. SF6: Oh f. IF7: D5h
g. TaF83– : D4d
b. Figure 3.15: a. CO2: Dh b. COF2: C 2v c. NO2 –
: C 2v
d. SO3: D3h e. SNF3: C 3v f. SO2Cl2: C 2v
g. XeO3: C 3v h. SO42– : T d i. SOF4: C 2v
j. ClO2F3: C 2v k. XeO3F2: D3h l. IOF5: C 4v
4.13 a. p x has C v symmetry. (Ignoring the difference in sign between the two lobes, the point
group would be Dh.)
b. d xy has D2h symmetry. (Ignoring the signs, the point group would be D4h.)
c. d x2 –y2 has D2h symmetry. (Ignoring the signs, the point group would be D4h.)
d. d z 2 has Dh symmetry.
e. f xyz has T d symmetry.
4.14 a. The superimposed octahedron and cube
show the matching symmetry elements.
The descriptions below are for the
elements of a cube; each element also
applies to the octahedron.
E Every object has an identityoperation.
8C 3 Diagonals through opposite
corners of the cube are C 3 axes.
6C 2 Lines bisecting opposite edges are C 2 axes.
6C 4 Lines through the centers of opposite faces are C 4 axes. Although there are only
three such lines, there are six axes, counting the C 43 operations.
3C 2 (=C 42) The lines through the centers of opposite faces are C 4 axes as well as
C 2 axes.
* Incorrectly cited as problem 3.41 in first printing of text.
C 3
C 2,
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 6/20
38 Chapter 4 Symmetry and Group Theory
Copyright © 2014 Pearson Education, Inc.
i The center of the cube is the inversion center.
6S 4 The C 4 axes are also S 4 axes.
8S 6 The C 3 axes are also S 6 axes.
3h These mirror planes are parallel to the faces of the cube.
6d These mirror planes are through two opposite edges.
b. Oh
c. O
4.15 a. There are three possible orientations of the two blue faces.
If the blue faces are opposite each other, a C 3 axis connects the centers of the
blue faces. This axis has 3 perpendicular C 2 axes, and contains three vertical
mirror places ( D
3d
).If the blue faces share one vertex of the octahedron, a C 2 axis includes this
vertex, and this axis includes two vertical mirror planes (C 2v).
The third possibility is for the blue faces to share an edge of the octahedron. In
this case, a C 2 axis bisects this shared edge, and includes two vertical mirror
planes (C 2v).
b. There are three unique orientations of the three blue faces.
If one blue face is arranged to form edges with each of the two remaining bluefaces, the only symmetry operations are identity and a single mirror plane (C s).
If the three blue faces are arranged such that a single blue face shares an edge
with one blue face, but only a vertex with the other blue face, the only symmetry
operation is a mirror plane that passes through the center of the blue faces, and
the point group is C s.
If the three blue faces each share an edge with the same yellow face, a C 3 axis
emerges from the center of this yellow face, and this axis includes three vertical
mirror planes (C 3v).
c. If there are four different colors, and each pair of opposite faces has the identical color,
the only symmetry operations are identity and inversion (C i ).
4.16 Four point groups are represented by the symbols of the chemical elements. Mostsymbols have a single mirror in the plane of the symbol (C s), for example, Cs! Two
symbols have D2h symmetry (H, I), and two more ( , S) have C 2h. Seven exhibit C 2v
symmetry (B, C, K, V, Y, W, U). In some cases, the choice of font may affect the point
group. For example, the symbol for nitrogen may have C 2h in a sans serif font ( ) but
otherwise C s (N). The symbol of oxygen has D∞h symmetry if shown as a circle but D2h
if oval.
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 7/20
Chapter 4 Symmetry and Group Theory 39
Copyright © 2014 Pearson Education, Inc.
4.17 a. on-deck circle Dh e. home plate C 2v
b. batter’s box D2h f. baseball D2d (see Figure 4.1)
c. cap C s g. pitcher C 1
d. bat C v
4.18 a. D2h d. D4h g. D2h
b. C 2v e. C 5h h. D4h
c. C 2v f. C 2v i. C 2
4.19 SNF3
S
N
FF
F
N F1
F2
F3
x
y
(top view)
Symmetry Operations:
N F1
F2
F3
N
F1
F2
F3
N F1
F2
F3
after E after C 3 after v ( xz )
Matrix Representations (reducible):
E :
1 0 0
0 1 0
0 0 1
C 3:
cos23
sin23
0
sin23
cos23
0
0 0 1
– 1
2 –
3
20
3
2 –
1
20
0 0 1
v( xz ):
1 0 0
0 1 0
0 0 1
Characters of Matrix Representations:
3 0 1
(continued on next page)
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 8/20
40 Chapter 4 Symmetry and Group Theory
Copyright © 2014 Pearson Education, Inc.
Block Diagonalized Matrices:
Irreducible Representations:
E 2 C 3 3 v Coordinates Used
2 –1 0 ( x, y)
1 1 1 z
Character Table:
C 3v E 2 C 3 3 v Matching Functions
A1 1 1 1 z x2
+ y2
, z 2
A2 1 1 –1 R z
E 2 –1 0 ( x, y), ( R x, R y) ( x2 – y2, xy)( xz , yz )
4.20 a. C 2h molecules have E , C 2, i, and h operations.
b. E : C 2: i: h:
1 0 0
0 1 0
0 0 1
1 0 0
0 1 0
0 0 1
1 0 0
0 1 0
0 0 1
1 0 0
0 1 0
0 0 1
c. These matrices can be block diagonalized into three 1× 1 matrices, with the
representations shown in the table.
( E ) (C 2) (i) (h)
Bu 1 –1 –1 1 from the x and y coefficients
Au 1 1 –1 –1 from the z coefficients
The total is = 2 Bu +Au.
d. Multiplying Bu and Au:
1× 1 + (–1)× 1 + (–1)× (–1) + 1× (–1) = 0, proving they are orthogonal.
C C
Cl
H
H
Cl
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 9/20
Chapter 4 Symmetry and Group Theory 41
Copyright © 2014 Pearson Education, Inc.
4.21 a. D2h molecules have E, C 2( z ), C 2( y), C 2( x), i, ( xy), ( xz ), and
( yz ) operations.
b. E :
1 0 0
0 1 00 0 1
C 2( z ):
1 0 0
0 1 00 0 1
C 2( y):
1 0 0
0 1 0
0 0 1
C 2( x):
1 0 0
0 1 0
0 0 1
i:
1 0 0
0 1 0
0 0 1
( xy):
1 0 0
0 1 0
0 0 1
( xz ):
1 0 0
0 1 0
0 0 1
( yz ):
1 0 0
0 1 0
0 0 1
c.
E C 2( z ) C 2( y) C 2( x) i ( xy) ( xz ) ( yz )
3 –1 –1 –1 –3 1 1 1
d. 1 1 –1 –1 1 –1 1 1 –1 matching B3u
2 1 –1 1 –1 –1 1 –1 1 matching B2u
3 1 1 –1 –1 –1 –1 1 1 matching B1u
e. 1× 2 = 1× 1 + (–1)× (–1) + (–1)× 1 + 1× (–1) + (–1)× (–1) + 1× 1
+ 1× (–1) + (–1)× 1 = 0
1× 3 = 1× 1 + (–1)× 1 + (–1)× (–1) + 1× (–1) + (–1)× (–1) + 1× (–1)
+ 1× 1 + (–1)× 1 = 0
2× 3 = 1× 1 + (–1)× 1 + 1× (–1) + (–1)× (–1) + (–1)× (–1) + 1× (–1)
+ (–1)× 1 + 1× 1 = 0
4.22 a. h = 8 (the total number of symmetry operations)
b. A1 × E = 1× 2 + 2× 1× 0 +1× (–2) + 2× 1× 0 + 2× 1× 0 = 0
A2 × E = 1× 2 + 2× 1× 0 +1× (–2) + 2× (–1)× 0 + 2× (–1)× 0 = 0
B1 × E = 1× 2 + 2× (–1)× 0 +1× (–2) + 2× 1× 0 + 2× (–1)× 0 = 0
B2 × E = 1× 2 + 2× (–1)× 0 +1× (–2) + 2× (–1)× 0 + 2× 1× 0 = 0
c. E : 4 + 2× 0 + 4 + 2 × 0 + 2× 0 = 8
A1: 1 + 2× 1 + 1 + 2× 1 + 2× 1 = 8
A2: 1 + 2× 1 + 1 + 2× 1 + 2× 1 = 8
B1: 1 + 2× 1 + 1 + 2× 1 + 2× 1 = 8
B2: 1 + 2× 1 + 1 + 2× 1 + 2× 1 = 8
C C
H
H
H
H
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 10/20
42 Chapter 4 Symmetry and Group Theory
Copyright © 2014 Pearson Education, Inc.
d. 1 = 2 A1 + B1 + B2 + E :
A1: 1/8[1× 6 + 2× 1× 0 + 1× 2 + 2× 1× 2 + 2× 1× 2] = 2
A2: 1/8[1× 6 + 2× 1× 0 + 1× 2 + 2× (–1)× 2 + 2× (–1)× 2] = 0
B1: 1/8[1× 6 + 2× (–1)× 0 + 1× 2 + 2× 1× 2 + 2× (–1)× 2] = 1
B2: 1/8[1× 6 + 2× (–1)× 0 + 1× 2 + 2× (–1)× 2 + 2× 1× 2] = 1
E : 1/8[2× 6 + 2× 0× 0 + (–2)× 2 + 2× 0× 2 + 2× 0× 2] = 1
2 = 3 A1 + 2 A2 + B1:
A1: 1/8[1× 6 + 2× 1× 4 + 1× 6 + 2× 1× 2 + 2× 1× 0] = 3
A2: 1/8[1× 6 + 2× 1× 4 + 1× 6 + 2× (–1)× 2 + 2× (–1)× 0] = 2
B1: 1/8[1× 6 + 2× (–1)× 4 + 1× 6 + 2× 1× 2 + 2× (–1)× 0] = 1
B2: 1/8[1× 6 + 2× (–1)× 4 + 1× 6 + 2× (–1)× 2 + 2× 1× 0] = 0
E : 1/8[2× 6 + 2× 0× 4 + (–2)× 6 + 2× 0× 2 + 2× 0× 0] = 0
4.23 C 3v
1 = 3 A1 + A2 + E :
A1: 1/6[1× 6 + 2× 1× 3 + 3× 1× 2] = 3
A2: 1/6[1× 6 + 2× 1× 3 + 3× (–1)× 2] = 1
E : 1/6[2× 6 + 2× (–1)× 3 + 3× 0× 2] = 1
2 = A2 + E :
A1: 1/6[1× 5 + 2× 1× (–1) + 3× 1× (–1)] = 0
A2: 1/6[1× 5 + 2× 1× (–1) + 3× (–1)× (–1)] = 1
E : 1/6[2× 5 + 2× (–1)× (–1) + 3× 0× (–1)] = 2
Oh
3 = A1 g + E g + T 1u:
A1 g : 1/48[6 + 0 + 0 + 12 + 6 + 0 + 0 + 0 + 12 + 12] = 1
A2 g : 1/48[6 + 0 + 0 – 12 + 6 + 0 + 0 + 0 + 12 – 12] = 0
E g : 1/48[12 + 0 + 0 + 0 + 12 + 0 + 0 + 0 + 24 + 0] = 1
T 1 g : 1/48[18 + 0 + 0 + 12 – 6 + 0 + 0 + 0 – 12 – 12] = 0
T 2 g : 1/48[18 + 0 + 0 – 12 – 6 + 0 + 0 + 0 – 12 + 12] = 0
A1u: 1/48[6 + 0 + 0 + 12 + 6 + 0 + 0 + 0 – 12 – 12] = 0
A2u: 1/48[6 + 0 + 0 – 12 + 6 + 0 + 0 + 0 – 12 + 12] = 0
E u: 1/48[12 + 0 + 0 + 0 + 12 + 0 + 0 + 0 – 24 + 0] = 0T 1u: 1/48[18 + 0 + 0 + 12 – 6 + 0 + 0 + 0 + 12 + 12] = 1
T 2u: 1/48[18 + 0 + 0 – 12 – 6 + 0 + 0 + 0 + 12 – 12] = 0
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 11/20
Chapter 4 Symmetry and Group Theory 43
Copyright © 2014 Pearson Education, Inc.
4.24 The d xy characters match the characters The d x2- y2 characters match the characters
of the B2 g representation: of the B1 g representation:
E
C 4
C 2
C 2
C 2
i
S 4
h
v
d
1
1
1
1
1
1
–1
–1
–1
–1
d xy
x
y
d xy
1
1
1
1
1
1
–1
–1
–1
–1
E
C 4
C 2
C 2
C 2
i
S 4
h
v
d
d x2 –y2
x
y
d x2 –y2
4.25 Chiral: 4.5: O2F2, [Cr(C2O4)3]3–
4.6: none 4.7: screw, Wilkins Micawber 4.8: recycle
symbol 4.9: set of three wind turbine blades, Flying Mercury sculpture, coiled
spring
4.26 a. Point group: C 4v
C 4v E 2C 4 C 2 2v 2d
18 2 –2 4 2
A1 1 1 1 1 1 z A2 1 1 1 –1 –1 R z
B1 1 –1 1 1 –1
B2 1 –1 1 –1 1
E 2 0 –2 0 0 ( x, y), ( R x, R y)
b. = 4 A1 + A2 + 2 B1 + B2 + 5 E
c. Translation: A1 + E (match x, y, and z )
Rotation: A2 + E (match R x, R y, and R z )Vibration: all that remain: 3 A1 + 2 B1 + B2 + 3 E
d. The character for each symmetry operation for the Xe–O stretch is +1.
This corresponds to the A1 irreducible representation, which matches
the function z and is therefore IR-active.
XeF F
F F
O
Xe
O
F F
F F
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 12/20
44 Chapter 4 Symmetry and Group Theory
Copyright © 2014 Pearson Education, Inc.
4.27 For SF6, the axes of the sulfur should point at three of the fluorines. The fluorine
axes can be chosen in any way, as long as one from each atom is directed toward the sulfur atom.
There are seven atoms with three axes each, for a total of 21.
Reduction of gives = 3T 1u + T 1 g + A1 g + E g + T 2 g + T 2u. T 1u accounts for translation and also
infrared active vibrational modes. T 1 g is rotation. The remainder are infrared-inactive vibrations.
4.28 a. cis-Fe(CO)4Cl2 has C 2v symmetry.
The vectors for CO stretching have the representation :
n(A1) = 1/4[4× 1 + 0× 1 + 2× 1 + 2× 1] = 2
n(A2) = 1/4[4× 1 + 0× 1 + 2× (–1) + 2× (–1)] = 0
n(B1) = 1/4[4× 1 + 0× (–1) + 2× 1 + 2× (–1)] = 1
n(B2) = 1/4[4× 1 + 0× (–1) + 2× (–1) + 2× 1] = 1
= 2 A1 + B1 + B2, all four IR active.
b. trans-Fe(CO)4Cl2 has D4h symmetry.
D4h E 2C 4 C 2 2C 2 2C 2 i 2S 4 h 2v 2d
4 0 0 2 0 0 0 4 2 0
A2u 1 1 1 –1 –1 –1 –1 –1 1 1 z
E u 2 0 –2 0 0 –2 0 2 0 0 ( x, y)
Oh E 8C 3 6C 2 6C 4 3C 2 i 6S 4 8S 6 3h 6d
21 0 –1 3 –3 –3 –1 0 5 3T 1u 3 0 –1 1 –1 –3 –1 0 1 1 ( x,y,z )
T 1 g 3 0 –1 1 –1 3 1 0 –1 –1 ( R x, R y, R z )
A1 g 1 1 1 1 1 1 1 1 1 1
A2u 1 1 –1 –1 1 1 –1 1 1 –1
E g 2 –1 0 0 2 2 0 –1 2 0 (2 z 2 – x2 – y2,
x2 – y2)
T 2u 3 0 1 –1 –1 –3 1 0 1 –1
T 2 g 3 0 1 –1 –1 3 –1 0 –1 1 ( xy, xz , yz )
C 2v E C 2 v( xz ) v( yz )
4 0 2 2
A1 1 1 1 1 z
A2 1 1 –1 –1
B1 1 –1 1 –1 x
B2 1 –1 –1 1 y
Fe
C
C
Cl C
Cl C O
O
O
O
Fe
Cl
Cl
C C
C C OO
O O
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 13/20
Chapter 4 Symmetry and Group Theory 45
Copyright © 2014 Pearson Education, Inc.
Omitting the operations that have zeroes in :
n(A2u) = 1/16[4× 1 + 2× 2× (–1) + 4× (–1) + 2× 2× 1] = 0
n(E u) = 1/16[4× 2 + 2× 2× 0 + 4× 2 + 2× 2× 0] = 1 (IR active)
Note: In checking for IR-active bands, it is only necessary to check the
irreducible representations having the same symmetry as x, y, or z , or acombination of them.
c. Fe(CO)5 has D3h symmetry.
The vectors for C–O stretching have the following representation :
D3h E 2C 3 3C 2 h 2S 3 3v
5 2 1 3 0 3
E 2 –1 0 2 –1 0 ( x, y)
A2 1 1 –1 –1 –1 1 z
n( E ) = 1/12 [ (5× 2) + (2× 2× –1) + (3× 2)] = 1n( A2) = 1/12 [(5× 1) + (2× 2× 1) + (3× 1× –1) + (3× –1) + (3× 3× 1)] = 1
There are two bands, one matching E and one matching A2. These are the only
irreducible representations that match the coordinates x, y, and z .
4.29 In 4.28a, the symmetries of the CO stretching vibrations of cis-Fe(CO)4Cl2 (C 2v symmetry) are
determined as 2 A1 + B1 + B2. Each of these representations matches Raman-active functions: A1
( x2, y2, z 2) ; A2 ( xy), B1 ( xz ); and B2 ( yz ), so all are Raman-active.
In 4.28b, the symmetries of the CO stretching vibrations of trans-Fe(CO)4Cl2 ( D4h symmetry) are
A1 g + B1 g + E u. Only A1 g ( x2 + y2, z 2) and B1 g ( x
2 – y2) match Raman active functions; this complex
exhibits two Raman-active CO stretching vibrations.
In 4.28c, the symmetries of the CO stretching vibrations of Fe(CO)5 ( D3h symmetry) are 2 A1 + E + A2. Only A1 ( x2 + y2, z 2) and E ( x2 – y2, xy) match Raman-active functions; this complex
exhibits four Raman-active CO stretching vibrations.
4.30 a. The point group is C 2h.
b. Using the Si–I bond vectors as a basis generates the representation:
C 2h E C 2 i h
4 0 0 0
A g 1 1 1 1 x2 + y2, z 2
B g 1 –1 1 –1 xz , yz Au 1 1 –1 –1 z
Bu 1 –1 –1 1 x, y
= A g + B g + Au + Bu
The Au and Bu vibrations are infrared active.
c. The A g and B g vibrations are Raman active.
Fe
C
C
C
CCO
O
O
O
O
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 14/20
46 Chapter 4 Symmetry and Group Theory
Copyright © 2014 Pearson Education, Inc.
4.31 trans isomer ( D4h): cis isomer (C 2v):
The simplest approach is to consider if the number of infrared-active I–O stretches is different for
these structures. (Alternatively, one could also determine the number of IR-active I–F stretches, a
slightly more complicated task.)
trans:
D4h E 2C 4 C 2 C 2 C 2 i 2S 4 h 2v 2d
2 2 2 0 0 0 0 0 2 2
A1 g 1 1 1 1 1 1 1 1 1 1
A2u 1 1 1 –1 –1 –1 –1 –1 1 1 z
There is only a single IR-active I–O stretch (the antisymmetric stretch), A2u.
cis:
C 2v E C 2 ( xz ) ( yz ) 2 0 2 0
A1 1 1 1 1 z B1 1 –1 1 –1 x
There are two IR-active I–O stretches, the A1 and B1 (symmetric and antisymmetric). Infrared
spectra should therefore be able to distinguish between these isomers. (Reversing the x and y
axes would give A1 + B2. Because B2 matches y, it would also represent an IR-active vibration.)
Because these isomers would give different numbers of IR-active absorptions, infrared spectrashould be able to distinguish between them. The reference provides detailed IR data.
4.32 a. One way to deduce the number of Raman-active vibrations of AsP3 is to first
determine the symmetries of all the degrees of freedom. This complex exhibits
C 3 symmetry, with the C 3 axis emerging from the As atom. The ( E ) is 12; the
x, y, and z axes of the four atoms do not shift when the identity operation is carried out.
Only the As atom contributes to the character of the C 3 transformation matrix; the P
atoms shift during rotation about the C 3 axis. The general transformation matrix for
rotation about the z axis (Section 4.3.3) affords 0 as (C 3) for The As atom and
one P atom do not shift when a v reflection is carried out, and ( v) = 2 (see the v( xz )
transformation matrix in Section 4.33 for the nitrogen atom of NH3 as a model of how the
two unshifted atoms of AsP3 will contribute to the character of the v transformation
matrix).
C 3v E C 3 v 12 0 2
A1 1 1 1 z x2 + y2 , z 2
A2 1 1 –1 R x
E 2 –1 0 ( x, y) , ( R x , R y) ( x2 – y2 , xy) , ( xz, yz )
PP
As
P
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 15/20
Chapter 4 Symmetry and Group Theory 47
Copyright © 2014 Pearson Education, Inc.
Reduction of the reducible representation affords 3 A1 + A2 + 4 E .
On the basis of the character table, the translational modes of AsP3 have the
symmetries A1 + E , and the rotational modes have the symmetries A2 + E . The six
vibrational modes of AsP3 subsequently have the symmetries 2 A1 + 2 E . These
vibrational modes are Raman-active, and four absorptions are expected (and observed)since the sets of E modes are degenerate. B. M. Cossairt, M.C. Diawara, C. C. Cummins,
Science 2009, 323, 602 assigns the bands as: 313 (a1), 345 (e), 428 (a1), 557 (e) cm-1.
Alternatively, the set of six bonds may be selected as the basis for a representation
focused specifically on stretches of these bonds. This approach generates the following
representation:
C 3v E C 3 v 6 0 2
This representation reduces to 2 A1 + 2 E , the same result as obtained by first considering
all degrees of freedom, then subtracting the translational and rotational modes.
b. As2P2 exhibits C 2v symmetry, and (like AsP3) will have six vibrational modes
(3 N – 6). Inspection of the C 2v character table indicates that all vibrational
modes will be Raman active. Since each irreducible representation has a
dimension of 1, the number of Raman absorptions expected is 6 (that is, there will be no
degenerate vibrational modes).
This prediction can be confirmed via deduction of the symmetries of the vibrational modes.
As in part a, we will first determine the symmetries of all the degrees of freedom. The ( E )
of the transformation matrix is 12. In As2P2, the C 2 axis does not pass through any atoms,
and all four atoms shift upon rotation; (C 2) = 0. Two atoms do not shift upon reflection
through each of the v planes. The contribution to the character of the transformation matrixfor each of these unshifted atoms is 1, and (v( xz )) = (v( yz )) = 2.
Reduction of the reducible representation affords 4 A1 + 2 A2 + 3 B1 + 3 B2.
On the basis of the above character table, the translational modes of As2P2 have the
symmetries A1 + B1 + B2, and the rotational modes have the symmetries A2 + B1 + B2. The
six anticipated Raman-active vibrational modes of As2P2 subsequently have the
symmetries 3 A1 + A2 + B1 + B2.
(continued on next page)
C 2v E C 2 v( xz ) v( yz )
12 0 2 2
A1 1 1 1 1 z x2 , y2 , z 2
A2 1 1 –1 –1 R z xy
B1 1 –1 1 –1 x, R y xz
B2 1 –1 –1 1 y, R x yz
PP
As
As
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 17/20
Chapter 4 Symmetry and Group Theory 49
Copyright © 2014 Pearson Education, Inc.
4.33 The possible isomers are as follows, with the triphenylphosphine ligand in either the axial (A) or
equatorial (B) sites.
OC Fe
CO
CO
Ph3P
CO
OC Fe
PPh3
CO
CO
CO
(A) C 3v (B) C 2v Note that the triphenylphosphine ligand is approximated as a simple L ligand for the sake of the
point group determination. Rotation about the Fe–P bond in solution is expected to render thearrangement of the phenyl rings unimportant in approximating the symmetry of these isomers in
solution. The impact of the phenyl rings would likely be manifest in the IR ν(CO) spectra of these
isomers in the solid-state.
For A, we consider each CO bond as a vector to deduce the expected number of carbonyl
stretching modes. The irreducible representation is as follows:
C 3v E C 3 v 4 1 2
A1 1 1 1 z x2 + y2, z 2
A2 1 1 –1 R x
E 2 –1 0 ( x, y), ( R x, R y) ( x2 – y2 , xy), ( xz , yz )
Reduction of the reducible representation affords 2 A1 + E . These stretching modes are IR-active
and three ν (CO) absorptions are expected for A.
For B, a similar analysis affords the following irreducible representation:
Reduction of the reducible representation affords 2 A1 + B1 + B2. These stretching modes are IR-
active, and four ν (CO) absorptions are expected for A.
The reported ν (CO) IR spectrum is consistent with formation of isomer A, with the
triphenylphosphine ligand in the axial site.
C 2v E C 2 v( xz ) v( yz ) 4 0 2 2
A1 1 1 1 1 z x2, y2, z 2
A2 1 1 –1 –1 R z xy
B1 1 –1 1 –1 x, R y xz
B2 1 –1 –1 1 y, R x yz
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 18/20
50 Chapter 4 Symmetry and Group Theory
Copyright © 2014 Pearson Education, Inc.
4.34 As in 4.33, we consider the triphenylphosphine ligand as a simple L group for point group
determination. The point groups for isomers A, B, and C are as follows:
OC Fe
PPh3
PPh3
CO
CO
OC Fe
CO
CO
PPh3
PPh3
(A) C 2v(B) D3h
OC Fe
CO
PPh3
PPh3
CO
(C) C s
For A, the set of irreducible representations for the three CO stretching vibrational modes is 2 A1
+ B1. These modes are all IR-active in the C 2v character table, and three ν (CO) IR absorptions are
expected for isomer A.
For B, the set of irreducible representations for the three CO stretching vibrational modes is A1 + E . Only the E mode is IR-active in the D3h point group, and one ν (CO) IR absorption is
expected for isomer B.
For C, the set of irreducible representations for the three CO stretching vibrational modes is
2 A These modes are all IR-active in the C s point group, and three ν (CO) IR absorptions
are expected for isomer C.
The single ν (CO) IR absorption reported for Fe(CO)3(PPh3)2 supports the presence of the D3h
isomer B.
The trans isomer B is reported in R. L. Keiter, E. A. Keiter, K. H. Hecker, C. A. Boecker,
Organometallics, 1988, 7 , 2466, and the authors observe splitting of the absorption associated
with the E mode in CHCl3. The forbidden A1 stretching mode was observed as a weak
absorption.
4.35 The IR spectrum exhibits two ν (CO) absorptions. The two proposed metal carbonyl fragments
will be considered independently for analysis.
Ti
OC
OC CO
CO
OC
OC
TiCO
CO
D4h C 4v
The reducible representation for the four vectors associated with the CO bonds in the C 4v
fragment is as follows:
Reduction of this representation affords A1 + B1 + E . The A1 and E modes are IR-active, and a
titanium complex with a square pyramidal titanium tetracarbonyl fragment is supported by the IR
spectral data.
C 4v E 2C 4 C 2 2 v 2 d
4 0 0 2 0
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 19/20
Chapter 4 Symmetry and Group Theory 51
Copyright © 2014 Pearson Education, Inc.
For the D4h fragment, the reducible representation for the set of vectors associated with the CO
bonds is:
Reduction of the reducible representation affords A1 g + B1 g + E u. Only the E modes are IR-active,
and a complex with a square planar titanium tetracarbonyl fragment is expected to exhibit a single
IR ν (CO) stretching absorption. This D4h possibility can therefore be ruled out on the basis of the
spectrum.
4.36 A reasonable product is the C 4v molecule Mo(CO)5(P(OPh)3), with CO
replacing a triphenylphosphite ligand.
The reducible representation for the five vectors associated with the CO bonds
in this molecule is:
Reduction of this representation affords 2 A1 + B1 + E . The A1 and E modes are IR-active, and
three IR ν (CO) stretching absorptions are expected. The reported IR spectrum features three
strong ν (CO) absorptions, and one “very weak” absorption attributed to the forbidden B1 mode in
D. J. Darensbourg, T. L. Brown, Inorg. Chem., 1968, 7 , 959.
4.37 I has C 2 symmetry, with a C 2 axis running right to left, perpendicular to the Cl, N, Cl, N and
Cl, P, Cl, P faces.
II also has C 2 symmetry, with the same C 2 axis as I. (Lower left corner occupied by Cl, not C.)
III has only an inversion center and C i symmetry.
4.38 An example for each of the five possible point groups:
T d :
C
F
FFF
C 3v:
C
H
FFF
C 2v:
C
H
HF
F
C s:
C
F
HBr Br
C 1:
C
F
HCl
Br
4.39 a. The S–C–C portion is linear, so the molecule has a C 3 axis along the line of these three
atoms, three v planes through these atoms and an F atom on each end, but no
other symmetry elements. C 3v
b. The molecule has only an inversion center, so it is C i . The inversion center is equivalent
to an S 2 axis perpendicular to the average plane of the ring.
c. M2Cl6Br 4 is C i .
d. This complex has a C 3 axis, splitting the three N atoms and the three P atoms (almost as
drawn), but no other symmetry elements. C 3
D4h E 2C 4 C 2 2C 2 2C 2 i 2S 4 h 2 v 2 d
4 0 0 2 0 0 0 4 2 0
C 4v E 2C 4 C 2 2 v 2 d
5 1 1 3 1
Mo
P
C
C C
C C
(OPh)3
O
O
O
O
O
8/9/2019 Ch 4 Solutions.pdf
http://slidepdf.com/reader/full/ch-4-solutionspdf 20/20
52 Chapter 4 Symmetry and Group Theory
e. The most likely isomer has the less electronegative Cl atoms in
equatorial positions. Point group: C 2v
4.40 The structures on the top row are D2d (left) and C s (right). Those on the
bottom row are C 2h (left) and C 4v (right).
4.41 a. C 3v
b. D5h
c. Square structure: D2d (bottom ligand on lower left Re should be CO instead of L);
Corner structure: C s
d. D3d
4.42 Web of Science and SciFinder Scholar should be helpful, but simply searching for these
symmetries using a general Internet search should provide examples of these point groups. Some
examples:
a. S 6: Mo2(SC6H2Me3)6 (M. H. Chisholm, J. F. Corning, and J. C. Huffman,
J. Am. Chem. Soc., 1983, 105, 5924)
Mo2(NMe2)6 (M. H. Chisholm, R. A. Cotton, B. A. Grenz, W. W. Reichert,
L. W. Shive, and B. R. Stults, J. Am. Chem. Soc., 1976, 98, 4469)
[NaFe6(OMe)12(dbm)6]+ (dbm = dibenzoylmethane, C6H5COCCOC6H5) (F.
L. Abbati, A. Cornia, A. C. Fabretti, A. Caneschi, and D. Garreschi, Inorg.
Chem., 1998, 37 , 1430)
b. T Pt(CF3)4, C44
c. I h C20, C80
d. T h [Co(NO2)6]3– , Mo(NMe2)6
In addition to examples that can be found using Web of Science, SciFinder, and other Internet
search tools, numerous examples of these and other point groups can be found in I. Hargittai and
M. Hargittai, Symmetry Through the Eyes of a Chemist, as listed in the General References
section.
P
F
F
FCl
Cl